Laser Cooling of Trapped Ions in the High-Temperature Regime
ORAL
Abstract
We employ a semiclassical framework to explore the motional dynamics of trapped ion crystals with arbitrarily high energy, including the effects of laser cooling. There are two major benefits to this approach: (1) it is non-perturbative, and hence captures dynamics beyond the Lamb-Dicke regime, and (2) it reduces the computational complexity by tracking a small number of phase space coordinates instead of several high-dimensional Fock spaces. This allows us to accurately and efficiently model a variety of exotic phenomena, such as the recrystallization of ion clouds which have been imparted with thousands of motional quanta due to collisions with background particles, a potentially limiting factor of trapped ion quantum computers. We show that this approach quantitatively agrees with the familiar quantum rate equation method when operating in the Lamb-Dicke regime, but also predicts non-exponential cooling and capture ranges for EIT cooling.
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Publication: [1] H.-K. Lau and M. B. Plenio. Laser cooling of a high-temperature oscillator by a three-level system.<br>Phys. Rev. B, 94:054305, Aug 2016.<br>[2] G. Morigi, J. Eschner, and C. H. Keitel. Ground state laser cooling using electromagnetically induced<br>transparency. Phys. Rev. Lett., 85:4458–4461, Nov 2000.<br>[3] M. W. van Mourik, P. Hrmo, L. Gerster, B. Wilhelm, R. Blatt, P. Schindler, and T. Monz. rf-induced<br>heating dynamics of noncrystallized trapped ions. Phys. Rev. A, 105:033101, Mar 2022.
Presenters
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John P Bartolotta
Quantinuum
Authors
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John P Bartolotta
Quantinuum
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Christopher Gilbreth
Quantinuum
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David Hayes
Quantinuum